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磁性生物吸附剂的评述:其在废水处理中的制备、应用和再生。

Critical review of magnetic biosorbents: Their preparation, application, and regeneration for wastewater treatment.

机构信息

Global Centre for Environmental Remediation, Faculty of Science and Information Technology, University of Newcastle, Callaghan, NSW 2308, Australia; Cooperative Research Centre for Contamination Assessment and Remediation of the Environment (CRC CARE), Callaghan, NSW 2308, Australia.

出版信息

Sci Total Environ. 2020 Feb 1;702:134893. doi: 10.1016/j.scitotenv.2019.134893. Epub 2019 Nov 2.

Abstract

The utilisation of magnetic biosorbents (metal or metal nanoparticles impregnated onto biosorbents) has attracted increasing research attention due to their manipulable active sites, specific surface area, pore volume, pore size distribution, easy separation, and reusability that are suitable for remediation of heavy metal(loid)s and organic contaminants. The properties of magnetic biosorbents (MB) depend on the raw biomass, properties of metal nanoparticles, modification/synthesis methods, and process parameters which influence the performance of removal efficiency of organic and inorganic contaminants. There is a lack of information regarding the development of tailored materials for particular contaminants and the influence of specific characteristics. This review focuses on the synthesis/modification methods, application, and recycling of magnetic biosorbents. In particular, the mechanisms and the effect of sorbents properties on the adsorption capacity. Ion exchanges, electrostatic interaction, precipitation, and complexation are the dominant sorption mechanisms for ionic contaminants whereas hydrophobic interaction, interparticle diffusion, partition, and hydrogen bonding are the dominant adsorption mechanisms for removal of organic contaminants by magnetic biosorbents. In generally, low pyrolysis temperatures are suitable for ionic contaminants separation, whereas high pyrolysis temperatures are suitable for organic contaminants removal. Additionally, magnetic properties of the biosorbents are positively correlated with the pyrolysis temperatures. Metal-based functional groups of MB can contribute to an ion exchange reaction which influences the adsorption capacity of ionic contaminants and catalytic degradation of non-persistent organic contaminants. Metal modified biosorbents can enhance adsorption capacity of anionic contaminants significantly as metal nanoparticles are not occupying positively charged active sites of the biosorbents. Magnetic biosorbents are promising adsorbents in comparison with other adsorbents including commercially available activated carbon, and thermally and chemically modified biochar in terms of their removal capacity, rapid and easy magnetic separation which allow multiple reuse to minimize remediation cost of organic and inorganic contaminants from wastewater.

摘要

由于磁性生物吸附剂(金属或金属纳米粒子浸渍在生物吸附剂上)具有可操纵的活性位点、比表面积、孔体积、孔径分布、易于分离和可重复使用等特点,适合修复重金属(类)和有机污染物,因此越来越受到研究关注。磁性生物吸附剂(MB)的性质取决于原始生物质、金属纳米粒子的性质、修饰/合成方法以及影响有机和无机污染物去除效率的工艺参数。对于特定污染物和特定特性的定制材料的开发,缺乏相关信息。本综述重点介绍了磁性生物吸附剂的合成/修饰方法、应用和回收。特别是,吸附剂性质对吸附容量的影响机制和作用。离子交换、静电相互作用、沉淀和络合是离子污染物的主要吸附机制,而疏水相互作用、颗粒间扩散、分配和氢键是磁性生物吸附剂去除有机污染物的主要吸附机制。一般来说,较低的热解温度适合于离子污染物的分离,而较高的热解温度适合于有机污染物的去除。此外,生物吸附剂的磁性与热解温度呈正相关。MB 的金属基官能团可以促进离子交换反应,从而影响离子污染物的吸附容量和非持久性有机污染物的催化降解。金属修饰的生物吸附剂可以显著提高阴离子污染物的吸附容量,因为金属纳米粒子不占据生物吸附剂的带正电荷的活性位点。与其他吸附剂相比,磁性生物吸附剂具有去除能力强、快速、易于磁分离、可多次重复使用等优点,可最大限度地降低从废水中修复有机和无机污染物的成本。

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